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A large-scale simulation of the piriform cortex by a cell automaton-based network model

机译:基于细胞自动机的网络模型对梨状皮层的大规模模拟

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摘要

An event-driven framework is used to construct a physiologically motivated large-scale model of the piriform cortex containing in the order of 10/sup 5/ neuron-like computing units. This approach is based on a hierarchically defined highly abstract neuron model consisting of finite-state machines. It provides computational efficiency while incorporating components which have identifiable counterparts in the neurophysiological domain. The network model incorporates four neuron types, and glutamatergic excitatory and GABA/sub A/ and GABA/sub B/ inhibitory synapses. The spatio-temporal patterns of cortical activity and the temporal and spectral characteristics of simulated electroencephalograms (EEGs) are studied. In line with previous experimental and compartmental work, 1) shock stimuli elicit EEG profiles with either isolated peaks or damped oscillations, the response type being determined by the intensity of the stimuli, and 2) temporally unpatterned input generates EEG oscillations supported by model-wide waves of excitation.
机译:事件驱动的框架用于构建生理动机的梨状皮质的大规模模型,该模型包含约10 / sup 5 /神经元样计算单元。该方法基于由有限状态机组成的分层定义的高度抽象的神经元模型。它提供了计算效率,同时并入了在神经生理学领域具有可识别对应部分的组件。网络模型包含四种神经元类型,以及谷氨酸能兴奋性和GABA / sub A /和GABA / sub B /抑制性突触。研究了皮质活动的时空模式以及模拟脑电图(EEG)的时间和频谱特征。与先前的实验和隔室工作一致,1)冲击刺激会激发具有孤立峰或阻尼振荡的EEG轮廓,响应类型取决于刺激的强度,以及2)时间上无模式的输入会产生由模型范围支持的EEG振荡激发波。

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